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Haws, S.

Publications and source records attributed to Haws, S..

2 recordsLinked to original sources

Dietary restriction of individual amino acids stimulates unique molecular responses in mouse liver

Dietary protein and essential amino acid (EAA) restriction promote favorable metabolic reprogramming, although the extent to which shared or EAA-specific mechanisms facilitate diet-associated phenotypes remains unclear. Here, we compared the physiological and molecular effects of dietary methionine, leucine, or isoleucine depletion (Met-D, Leu-D, and Ile-D) in C57BL/6J mice. Each diet elicited responses not phenocopied by mTORC1 inhibition, including reduced fat mass and hepatic amino acid catabolism. Ile-D yielded additional distinct responses, highlighted by histone H2A/H4 hypoacetylation and maintained hepatic acetyl-CoA levels despite downregulated FA {beta}-oxidation. Multi-Omics Factor Analysis of 14,139 data points objectively affirmed Ile-D phenotypes are distinct from Met-D or Leu-D and identified several metabolic and chromatin features as primary discriminators. Metabolic and epigenetic responses to Ile-D were recapitulated in vitro, suggesting underlying mechanisms represent fundamental cellular properties. Together, these results demonstrate EAAs can stimulate unique phenotypes and highlight distinct molecular mechanisms by which EAAs may inform metabolic health.

biochemistry↗

Antagonistic H3K79me-H3K9ac crosstalk determines elongation at housekeeping genes to promote pluripotency

Pluripotent embryonic stem cells (ESCs) have a transcriptionally permissive chromatin environment enriched for gene activation-associated histone modifications as compared to somatic cells. A striking exception is DOT1L-mediated H3K79 methylation that is considered a positive regulator of transcription. Here we find that ESCs maintain low H3K79 methylation to facilitate RNA polymerase II (RNAPII) elongation for greater nascent transcription. Inhibiting DOT1L during the reprogramming of somatic to induced pluripotent stem cells (iPSCs) enables ESC-like RNAPII and transcriptional status. Mechanistically, DOT1L inhibition causes a local gain of histone acetylation at genes that lose the most H3K79me, which unexpectedly are ubiquitously expressed genes that perform essential functions in every cell, rather than lineage specifying genes. Maintenance of this elevated histone acetylation is required for the enhanced conversion to iPSCs upon DOT1L inhibition. Remarkably, increasing global DOT1L or site-specific tethering of DOT1L is sufficient to decrease H3K9ac in ESCs. We discover a high H3ac-low H3K79me epigenetic mechanism that promotes transcription elongation at ubiquitously expressed genes to enforce pluripotent cell identity.

developmental biology↗